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- from typing import Any, Optional
- from core.app.entities.app_invoke_entities import ModelConfigWithCredentialsEntity
- from core.memory.token_buffer_memory import TokenBufferMemory
- from core.model_manager import ModelInstance
- from core.model_runtime.entities.message_entities import PromptMessage
- from core.model_runtime.entities.model_entities import ModelPropertyKey
- from core.prompt.entities.advanced_prompt_entities import MemoryConfig
- class PromptTransform:
- def _append_chat_histories(
- self,
- memory: TokenBufferMemory,
- memory_config: MemoryConfig,
- prompt_messages: list[PromptMessage],
- model_config: ModelConfigWithCredentialsEntity,
- ) -> list[PromptMessage]:
- rest_tokens = self._calculate_rest_token(prompt_messages, model_config)
- histories = self._get_history_messages_list_from_memory(memory, memory_config, rest_tokens)
- prompt_messages.extend(histories)
- return prompt_messages
- def _calculate_rest_token(
- self, prompt_messages: list[PromptMessage], model_config: ModelConfigWithCredentialsEntity
- ) -> int:
- rest_tokens = 2000
- model_context_tokens = model_config.model_schema.model_properties.get(ModelPropertyKey.CONTEXT_SIZE)
- if model_context_tokens:
- model_instance = ModelInstance(
- provider_model_bundle=model_config.provider_model_bundle, model=model_config.model
- )
- curr_message_tokens = model_instance.get_llm_num_tokens(prompt_messages)
- max_tokens = 0
- for parameter_rule in model_config.model_schema.parameter_rules:
- if parameter_rule.name == "max_tokens" or (
- parameter_rule.use_template and parameter_rule.use_template == "max_tokens"
- ):
- max_tokens = (
- model_config.parameters.get(parameter_rule.name)
- or model_config.parameters.get(parameter_rule.use_template or "")
- ) or 0
- rest_tokens = model_context_tokens - max_tokens - curr_message_tokens
- rest_tokens = max(rest_tokens, 0)
- return rest_tokens
- def _get_history_messages_from_memory(
- self,
- memory: TokenBufferMemory,
- memory_config: MemoryConfig,
- max_token_limit: int,
- human_prefix: Optional[str] = None,
- ai_prefix: Optional[str] = None,
- ) -> str:
- """Get memory messages."""
- kwargs: dict[str, Any] = {"max_token_limit": max_token_limit}
- if human_prefix:
- kwargs["human_prefix"] = human_prefix
- if ai_prefix:
- kwargs["ai_prefix"] = ai_prefix
- if memory_config.window.enabled and memory_config.window.size is not None and memory_config.window.size > 0:
- kwargs["message_limit"] = memory_config.window.size
- return memory.get_history_prompt_text(**kwargs)
- def _get_history_messages_list_from_memory(
- self, memory: TokenBufferMemory, memory_config: MemoryConfig, max_token_limit: int
- ) -> list[PromptMessage]:
- """Get memory messages."""
- return list(
- memory.get_history_prompt_messages(
- max_token_limit=max_token_limit,
- message_limit=memory_config.window.size
- if (
- memory_config.window.enabled
- and memory_config.window.size is not None
- and memory_config.window.size > 0
- )
- else None,
- )
- )
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